4.5 Article

Capping-layer-mediated lattice mismatch and redox reaction in SrTiO3-based bilayers

Journal

JOURNAL OF PHYSICS-CONDENSED MATTER
Volume 35, Issue 29, Pages -

Publisher

IOP Publishing Ltd
DOI: 10.1088/1361-648X/accd37

Keywords

two-dimensional electron systems; lattice mismatch; oxygen vacancy; SrTiO3-based bilayers

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It is less studied to modify the capping layer in the SrTiO3-layer-carried 2DES. Several SrTiO3 bilayers with different crystalline and amorphous oxide capping layers were fabricated. The interfacial conductance and carrier mobility showed different behaviors in both crystalline and amorphous bilayer 2DES.
It is well known that the traditional two-dimensional electron system (2DES) hosted by the SrTiO3 substrate can exhibit diverse electronic states by modifying the capping layer in heterostructures. However, such capping layer engineering is less studied in the SrTiO3-layer-carried 2DES (or bilayer 2DES), which is different from the traditional one on transport properties but more applicable to the thin-film devices. Here, several SrTiO3 bilayers are fabricated by growing various crystalline and amorphous oxide capping layers on the epitaxial SrTiO3 layers. For the crystalline bilayer 2DES, the monotonical reduction on the interfacial conductance, as well as carrier mobility, is recorded on increasing the lattice mismatch between the capping layers and epitaxial SrTiO3 layer. The mobility edge raised by the interfacial disorders is highlighted in the crystalline bilayer 2DES. On the other hand, when increasing the concentration of Al with high oxygen affinity in the capping layer, the amorphous bilayer 2DES becomes more conductive accompanied by the enhanced carrier mobility but almost constant carrier density. This observation cannot be explained by the simple redox-reaction model, and the interfacial charge screening and band bending need to be considered. Moreover, when the capping oxide layers have the same chemical composition but with different forms, the crystalline 2DES with a large lattice mismatch is more insulating than its amorphous counterpart, and vice versa. Our results shed some light on understanding the different dominant role in forming the bilayer 2DES using crystalline and amorphous oxide capping layer, which may be applicable in designing other functional oxide interfaces.

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